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Published on: May 31, 2018
Macrophage activating properties of the tryptophan catabolite picolinic acid
Maria Carla Bosco1, Annamaria Rapisarda, Gioia Reffo
1Laboratory of Molecular Biology, G.Gaslini Institute, 16147 Genova, Italy. mcbosco1@virgilio.it
Abstract:
Recent studies have suggested a role for aminoacid catabolites as important regulators of macrophage (Mphi) activities. We reported previously that picolinic acid (PA), a tryptophan catabolite produced under inflammatory conditions and a costimulus with IFNgamma of Mphi effector functions, is a selective inducer of the Mphi inflammatory protein-1alpha (MIP-1alpha) and -1beta (MIPs), two CC-chemokines involved in the elicitation of the inflammatory reactions and in the development of the Th1 responses. In this study, we have investigated the effects of IFNgamma on PA-induced MIPs expression and secretion by mouse Mphi as well as the regulation of MIP-1alpha/beta receptor, CCR5, by both stimuli alone or in combination. We demonstrated that IFNgamma inhibited MIPs mRNA stimulation by PA in a dose-and time-dependent fashion, despite its ability to induce other CC- or CXC chemokines. MIPs mRNA down-regulation was associated with decreased intracellular chemokine expression and secretion and was dependent on both mRNA destabilization and gene transcription inhibition. Moreover, IFNgamma inhibitory effects were stimulus-specific because MIPs induction by PA was either unaffected or increased by the anti-inflammatory cytokines, IL-10 and IL-4, or the pro-inflammatory stimulus, LPS, respectively. In contrast, we found that IFNgamma increased CCR5 basal expression, whereas PA down-regulated both constitutive and IFNgamma-induced CCR5 mRNA and protein levels. These results demonstrate that IFNgamma and PA have reciprocal effects on the production of MIPs chemokines and the expression of their receptor. The concerted action of IFNgamma and PA on MIP-1alpha/beta chemokine/receptor system is likely to be of pathophysiological significance and to represent an important regulatory mechanism for leukocyte recruitment and distribution into damaged tissues during inflammatory responses.
Insights
Picolinic acid (PA) induces macrophage inflammatory protein-1 alpha/beta (MIPs), but interferon-gamma (IFNγ) inhibits this induction. IFNγ increases MIP receptor (CCR5) expression, while PA decreases it, revealing reciprocal regulation in inflammatory responses.
Area of Science:
- Immunology
- Molecular Biology
- Cell Biology
Background:
- Amino acid catabolites regulate macrophage (Mphi) activities.
- Picolinic acid (PA), a tryptophan catabolite, induces Mphi inflammatory protein-1 alpha (MIP-1alpha) and -1beta (MIPs) chemokines, crucial for inflammation and Th1 responses.
- IFNγ acts as a costimulus for Mphi effector functions.
Purpose of the Study:
- Investigate the effects of IFNγ on PA-induced MIPs expression and secretion by mouse Mphi.
- Examine the regulation of the MIP-1alpha/beta receptor, CCR5, by IFNγ and PA, alone and in combination.
Main Methods:
- Quantitative analysis of MIPs mRNA and protein levels in Mphi.
- Assessment of CCR5 mRNA and protein expression.
- Investigation of mRNA destabilization and gene transcription inhibition mechanisms.
Main Results:
- IFNγ dose- and time-dependently inhibited PA-induced MIPs mRNA stimulation, decreasing intracellular expression and secretion.
- IFNγ's inhibitory effect on MIPs was stimulus-specific; IL-10 and IL-4 had no effect, while LPS increased MIPs induction.
- IFNγ increased basal CCR5 expression, whereas PA downregulated both constitutive and IFNγ-induced CCR5 mRNA and protein levels.
Conclusions:
- IFNγ and PA exert reciprocal regulatory effects on MIPs chemokine production and their receptor CCR5 expression.
- The interplay between IFNγ and PA on the MIP-1alpha/beta chemokine/receptor system is significant in inflammatory responses.
- This regulation is crucial for controlling leukocyte recruitment and distribution in damaged tissues during inflammation.

